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首页> 外文期刊>Australian Journal of Earth Sciences >High-T-low-P thermal anomalies superposed on biotite-grade rocks, Wongwibinda Metamorphic Complex, southern New England Orogen, Australia: heat advection by aqueous fluid?
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High-T-low-P thermal anomalies superposed on biotite-grade rocks, Wongwibinda Metamorphic Complex, southern New England Orogen, Australia: heat advection by aqueous fluid?

机译:澳大利亚新英格兰造山带南部,Wongwibinda变质带,黑云母级岩石上的高-T-低-P热异常:含水流体的热对流?

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摘要

The Wongwibinda Metamorphic Complex is characterised by ~400 km~2 of biotite-grade rocks with irregular, km-scale zones of cordierite-bearing high-T rock (T > 550°C). Cordierite-bearing rocks include different textures: (i) cordierite-K-feldspar-spotted hornfels; (ii) sheared cordierite-K-feldspar-augen schists; and (iii) migmatites with or without comparatively coarse garnet poikiloblasts. Integrated petrography, mineral chemistry and mineral equilibria modelling indicate metamorphic peak conditions in samples of hornfels of approximately P ≤ 250 MPa and T = 570-620°C. Two samples of sheared rock preserve peak conditions of approximately T = 670-690°C or T < 600°C and P ≤ 200 MPa, consistent with rapid cooling or variable thermal structure in the Glen Mohr Shear Zone. Electron microprobe U-Th-Pb monazite data indicate a date of 291.5 ± 1.8 Ma for the shear zone, indistinguishable from the age of Hillgrove Plutonic Suite granitoids in the complex. Monazite ages are complex in the hornfels samples that were likely, on the basis of structural relationships, metamorphosed early in the history of the Wongwibinda Metamorphic Complex (ca 300 Ma). Previous monazite dating of migmatite samples (ca 297 Ma) suggests that the metamorphic cycle was short-lived, lasting less than ca 10 m.y. Metamorphic field gradients are <15-23°C km~(-1) across much of the complex but locally steep (>50-100°C km~(-1)) around the high-T rocks. Rejection of most heat sources leaves regional conductive heating as the most plausible explanation for the smooth, broad and shallow metamorphic field gradient in the biotite-grade rocks. Another mechanism of heat transfer is required to explain the local, steep metamorphic field gradients and development of high-T cordierite-bearing rocks. The spatial association of quartzite units centred within two cordierite-bearing high-T domains and an increased abundance of quartz veins above the cordierite isograd suggests heat advection by aqueous fluid locally perturbed the broad conductive heating. Fluid was channelled within shear zones and locally infiltrated nearby rocks. Variable fluid flux and strain have produced the range of different textures in cordierite-bearing rocks of the Wongwibinda Metamorphic Complex.
机译:Wongwibinda变质复合体的特征是黑云母级岩石〜400 km〜2,具有不规则的千米级堇青石高T型岩石(T> 550°C)。含堇青石的岩石具有不同的质地:(i)堇青石-钾长石斑鱼。 (ii)剪切的堇青石-钾长石-奥根片岩; (iii)带有或不带有较粗石榴石poikiloblasts的migmatite。集成岩相学,矿物化学和矿物平衡模型表明,角f样品的变质峰条件约为P≤250 MPa,T = 570-620°C。两个剪切的岩石样品保留了大约T = 670-690°C或T <600°C和P≤200 MPa的峰值条件,这与格伦莫尔剪切区的快速冷却或可变热结构一致。电子探针U-Th-Pb独居石数据表明剪切带的日期为291.5±1.8 Ma,与复合物中Hillgrove Plutonic Suite花岗岩的年龄没有区别。角f样品中的独居石年龄很复杂,根据结构关系,它们很可能在Wongwibinda变质复合体(约300 Ma)的历史早期变质了。先前对辉锰矿样品的独居石定年(约297 Ma)表明,变质周期是短暂的,持续时间少于约10m.y。跨大部分复杂区域的变质场梯度<15-23°C km〜(-1),但高T岩周围局部较陡(> 50-100°C km〜(-1))。大部分热源的排除使区域传导加热成为黑云母级岩石中光滑,宽和浅的变质场梯度的最合理解释。需要另一种传热机制来解释局部高陡变质场梯度和高T堇青石岩的发育。石英岩单元在两个含堇青石的高T域内的空间关联以及堇青石等梯度上方石英脉的丰度增加表明,含水流体的热对流会局部干扰广泛的传导加热。流体在剪切区内导流,并局部渗入附近的岩石。 Wongwibinda变质复合体的含堇青石的岩石中可变的流体通量和应变产生了不同的织构范围。

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